A data storage device includes a base, a data storage disk, an actuator arm, a suspension, and a piezoelectric actuator. The data storage disk is attached to the base and has a read/write surface defining an x-y plane. The actuator arm is attached to the base at a first pivot point to rotate parallel to the x-y plane. The suspension is attached to the actuator arm at a second pivot point, the suspension having a first end comprising a curved edge surface, and a second end supporting a head that is configured to interact with the read/write surface. The piezoelectric actuator is disposed on the actuator arm and comprises a biasing finger configured to contact the curved edge surface to rotate the suspension parallel to the x-y plane about the second pivot point. An actuator arm assembly and a method of use are also described.
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8. An actuator arm assembly comprising:
an actuator arm;
a suspension attached to the actuator arm at a pivot point, the suspension comprising a curved edge surface; and
a piezoelectric actuator disposed on the actuator arm and comprising a biasing finger configured to contact the curved edge surface to rotate the suspension about the pivot point.
16. A method comprising:
rotating an actuator arm in a horizontal plane about a first pivot point, the actuator arm coupled to a suspension at a second pivot point; and
selectively driving first and second electrodes of an ultrasonic piezoelectric actuator disposed on the actuator arm such that a biasing finger of the ultrasonic piezoelectric actuator contacts a curved edge surface of the suspension to rotate the suspension about the second pivot point.
1. A data storage device comprising:
a base;
a data storage disk attached to the base and having a read/write surface defining an x-y plane;
an actuator arm attached to the base at a first pivot point to rotate parallel to the x-y plane;
a suspension attached to the actuator arm at a second pivot point, the suspension having a first end comprising a curved edge surface, and a second end supporting a head that is configured to interact with the read/write surface; and
a piezoelectric actuator disposed on the actuator arm and comprising a biasing finger configured to contact the curved edge surface to rotate the suspension parallel to the x-y plane about the second pivot point.
3. The data storage device of
an inner race fixed to the suspension; and
an outer race fixed the actuator arm.
4. The data storage device of
5. The data storage device of
6. The data storage device of
the suspension comprises an upper plate and a lower plate; and
a ball bearing is disposed at the second pivot point, wherein the ball bearing comprises an inner race fixed to both of the upper and lower plates of the suspension.
7. The data storage device of
10. The actuator arm assembly of
an inner race fixed to the suspension; and
an outer race fixed the actuator arm.
11. The actuator arm assembly of
12. The actuator arm assembly of
13. The actuator arm assembly of
the suspension comprises an upper plate and a lower plate; and
a ball bearing is disposed at the pivot point, wherein the ball bearing comprises an inner race fixed to both of the upper and lower plates of the suspension.
14. The actuator arm assembly of
15. The actuator arm assembly of
17. The method of
18. The method of
19. The method of
the suspension carries a second read/write head; and
selectively driving the first and second electrodes of the ultrasonic piezoelectric actuator moves the first and second read/write heads in unison.
20. The method of
the suspension has a neutral position aligned with a longitudinal extent of the actuator arm;
selectively driving the first and second electrodes of the ultrasonic piezoelectric actuator in a first operation rotates the suspension to a left of the neutral position; and
selectively driving the first and second electrodes of the ultrasonic piezoelectric actuator in a second operation rotates the suspension to a right of the neutral position.
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In one embodiment, a data storage device comprises a base, a data storage disk, an actuator arm, a suspension, and a piezoelectric actuator. The data storage disk is attached to the base and has a read/write surface defining an x-y plane. The actuator arm is attached to the base at a first pivot point to rotate parallel to the x-y plane. The suspension is attached to the actuator arm at a second pivot point, the suspension having a first end comprising a curved edge surface, and a second end supporting a head that is configured to interact with the read/write surface. The piezoelectric actuator is disposed on the actuator arm and comprises a biasing finger configured to contact the curved edge surface to rotate the suspension parallel to the x-y plane about the second pivot point.
In another embodiment, an actuator arm assembly comprises an actuator arm, a suspension, and a piezoelectric actuator. The suspension is attached to the actuator arm at a pivot point, and the suspension comprises a curved edge surface. The piezoelectric actuator is disposed on the actuator arm and comprises a biasing finger configured to contact the curved edge surface to rotate the suspension about the pivot point.
In yet another embodiment, a method comprises rotating an actuator arm in a horizontal plane about a first pivot point, the actuator arm coupled to a suspension at a second pivot point; and selectively driving first and second electrodes of an ultrasonic piezoelectric actuator disposed on the actuator arm such that a biasing finger of the ultrasonic piezoelectric actuator contacts a curved edge surface of the suspension to rotate the suspension about the second pivot point.
Other features and benefits that characterize embodiments of the disclosure will be apparent upon reading the following detailed description and review of the associated drawings.
The figures may not be drawn to scale. In particular, some features may be enlarged relative to other features for clarity.
Embodiments of the disclosure relate to reducing or eliminating head skew while reading tracks on data storage disks in a data storage device (DSD). Prior to providing details regarding the different embodiments, a description of a suitable operating environment is provided below in connection with
It should be noted that the same or similar reference numerals are used in different figures for the same or similar elements. All descriptions of an element also apply to all other versions of that element unless otherwise stated. It should also be understood that the terminology used herein is for the purpose of describing embodiments, and the terminology is not intended to be limiting. Unless indicated otherwise, ordinal numbers (e.g., first, second, third, etc.) are used to distinguish or identify different elements or steps in a group of elements or steps, and do not supply a serial or numerical limitation on the elements or steps of the embodiments thereof. For example, “first,” “second,” and “third” elements or steps need not necessarily appear in that order, and the embodiments thereof need not necessarily be limited to three elements or steps. It should also be understood that, unless indicated otherwise, any labels such as “left,” “right,” “front,” “back,” “top,” “bottom,” “forward,” “reverse,” “clockwise,” “counter clockwise,” “up,” “down,” or other similar terms such as “upper,” “lower,” “aft,” “fore,” “vertical,” “horizontal,” “proximal,” “distal,” “intermediate” and the like are used for convenience and are not intended to imply, for example, any particular fixed location, orientation, or direction. Instead, such labels are used to reflect, for example, relative location, orientation, or directions. It should also be understood that the singular forms of “a,” “an,” and “the” include plural references unless the context clearly dictates otherwise.
It will be understood that, when an element is referred to as being “connected,” “coupled,” or “attached” to another element, it can be directly connected, coupled or attached to the other element, or it can be indirectly connected, coupled, or attached to the other element where intervening or intermediate elements may be present. In contrast, if an element is referred to as being “directly connected,” “directly coupled” or “directly attached” to another element, there are no intervening elements present. Drawings illustrating direct connections, couplings or attachments between elements also include embodiments in which the elements are indirectly connected, coupled or attached to each other.
Each of heads 102 is coupled to the actuator mechanism 110 through a suspension assembly which includes a load beam 120 connected to an actuator arm 122 of the mechanism 110, for example through a swage connection. The actuator mechanism 110 is rotationally coupled to a frame or base deck 144 through a bearing 124 to rotate about axis or shaft 126. The actuator mechanism 110 moves the heads 102 in a cross-track direction as illustrated by arrow 130. Each of the heads 102 includes one or more transducer elements (not shown) coupled to head circuitry (not shown) through flex circuit 134.
In general, in order to keep read/write heads 102 from landing on disks 104 in a data storage device 100 when, for example, power is removed from the data storage device 100, and to prevent the heads 102 from colliding with outer edges of the disks 104 during load and unload operations, a head support ramp assembly 136 is provided adjacent to the OD 109 of the disks 104. In an exemplary data storage device 100, a number of heads 102 is less than a number of disk 104 surfaces.
In the particular embodiment shown in
Head support ramp assembly 136 supports head end 142 of HSA 138 when the HSA 138 is moved away from the data storage disk(s) 104. In some embodiments, head support ramp assembly 136 includes a first ramp portion 136a adjacent to the OD 109 of the data storage disk(s) 104 and a second ramp portion 136b adjacent to the first ramp portion 136a. In order to move the HSA 138 from either an upper position to a lower position or from a lower position to an upper position, the HSA 138 is first rotated about axis 126, or otherwise moved in the x-y plane, until a head end 142 of the HSA 138 is supported on the moveable portion 136b of the head-support ramp assembly 136. Then, the HSA 138 and the moveable portion 136b are moved in unison vertically (for example, in a z direction). An entire ramp 136 or a portion thereof can also be moved in the x-y plane off the disk stack, such as by retraction, flexing, or rotation, for example. Other ramp configurations can also be used, such as those described in the following commonly owned patent applications, which are hereby incorporated by reference: U.S. application Ser. No. 16/863,287 filed on Apr. 30, 2020, entitled “Split Ramp for Data Storage Devices;” and U.S. application Ser. No. 17/163,983 filed on Feb. 1, 2021, entitled “Ramp Activation Systems for an Elevator Drive.”
In one embodiment, a base of elevator 140 may be driven up and down by a coil and a magnet (not shown) with hard stops at both ends that limit the extent of upward and downward movement of the HSA 138. In general, any suitable driving mechanism may be used to move elevator 140 up and down. Exemplary drivers for Z direction motion of elevator 140 include a ball screw with an internal motor, a voice coil motor, an inchworm style piezoelectric brake crawler, a linear motor, a shape memory alloy based actuator, and a combination of the above. More details on data storage devices are described in the following commonly owned patent application, which is hereby incorporated by reference: U.S. application Ser. No. 17/233,818 filed on Apr. 19, 2021, entitled “Zero Skew Elevator System.” In some embodiments, an elevator is not used because the HSA includes the same number of heads as the number of disk surfaces, and many actuator arms are attached to an E-block of the actuator.
For use of heads 102 for reading and writing data relative to disk 104, actuator 110 is activated to rotate the actuator arm 122, to thereby move the head end 142 of HSA 136 off of the head support ramp assembly 136 and to the disk 104. In some illustrations, although a movable ramp portion 136b is not shown, such a ramp portion may be used with any embodiment of a disk storage device. Referring to
In an exemplary embodiment, HSA 138 is able to position head 102 relative to disk 104 in a selected cross disk position along arc 130 (about a first pivot axis 126) and with a corrected zero skew orientation of the head 102 relative to any particular track 114 due to rotation of load beam 120 relative to actuator arm 122 about a second pivot axis 128. As shown in
As shown in
As shown in
In an exemplary embodiment, an end of actuator arm 122 includes aperture 154 configured for the insertion of pivot bearing 146, which in an exemplary embodiment is a ball bearing. Each of upper rotary base plate 150a and lower rotary base plate 150b includes an aperture 156 for reception of a shaft 158 of the pivot bearing 146. As shown in
In an exemplary embodiment, the shaft 158 of inner race 160 is fixed by adhesive to the upper and lower rotary base plates 150a, 150b at their respective apertures 156. Suitable adhesives include those used for pivot cartridges in rotary actuators, such as described in the commonly owned U.S. Pat. No. 10,192,575 for a “Split actuator with multiple head stack assemblies bonded to bearing sleeves,” which is incorporated herein by reference. In an exemplary embodiment, outer race 162 is fixed by adhesive in aperture 154 of actuator arm 122. The balls 164 are configured to roll in channel 166, thereby allowing relative rotation of the inner and outer races 160, 162 of pivot bearing 146. In an exemplary embodiment, pivot bearing 146 is a small ball bearing with balls 164 having a ball diameter of about 0.25 millimeter. Such a ball bearing is commercially available from Minebea Mitsumi of Tokyo, Japan.
As shown in
In an exemplary embodiment, piezoelectric actuator 148 has a standing wave ultrasonic piezoelectric motor, wherein motion of the upper rotary base plate 150a is caused by elliptical oscillation of biasing finger 152 against a contact point on arcuate surface 168. In some embodiments, surface 168 can include features that assist in this frictional engagement, such as a knurled or otherwise textured surface.
In an exemplary embodiment, as shown in
In addition to moving head end 142 of the head stack assembly 138 to align the head 102 with a desired track 114, the slight movements of load beam suspension 120 caused by the ultrasonic piezoelectric actuator 148 can also be used to place the head 102 precisely with respect to a surface of disk 104, with finer motion gradations than can be achieved with the arm actuator mechanism 110. This feature allows the exemplary data storage system 100 to read data with increased track per inch (TPI) capability. Additional information relevant to high performance of a disk drive is provided in the following commonly owned patent applications and patents, which are hereby incorporated by reference: U.S. application Ser. No. 17/172,684 filed on Feb. 10, 2021, entitled “Adjusting HGA Z-height via HSA Elevator Using Head/Actuator Feedback;” US Published Patent Application No. 2004/0257710 for “Hard drive actuator arm with reduced skew variation;” U.S. Pat. No. 6,987,637 for “Magnetic recording system which eliminates skew angle effect;” U.S. Pat. No. 9,361,919 for “Disk drive with parallel head actuation;” U.S. Pat. No. 10,249,339 for “Read-after-write methodology using multiple actuators moveable over the same magnetic media;” and U.S. Pat. No. 10,818,317 for “Multi-actuator data storage system.”
As shown in
The illustrations of the embodiments described herein are intended to provide a general understanding of the structure of the various embodiments. The illustrations are not intended to serve as a complete description of all of the elements and features of apparatus and systems that utilize the structures or methods described herein. Features described with respect to any embodiment also apply to any other embodiment. Many other embodiments may be apparent to those of skill in the art upon reviewing the disclosure. Other embodiments may be utilized and derived from the disclosure, such that structural and logical substitutions and changes may be made without departing from the scope of the disclosure. Additionally, the illustrations are merely representational and may not be drawn to scale. Certain proportions within the illustrations may be exaggerated, while other proportions may be reduced. Accordingly, the disclosure and the figures are to be regarded as illustrative rather than restrictive.
One or more embodiments of the disclosure may be referred to herein, individually and/or collectively, by the term “invention” merely for convenience and without intending to limit the scope of this application to any particular invention or inventive concept. Moreover, although specific embodiments have been illustrated and described herein, it should be appreciated that any subsequent arrangement designed to achieve the same or similar purpose may be substituted for the specific embodiments shown. This disclosure is intended to cover any and all subsequent adaptations or variations of various embodiments. Combinations of the above embodiments, and other embodiments not specifically described herein, will be apparent to those of skill in the art upon reviewing the description. All patent documents mentioned in the description are incorporated by reference.
The Abstract of the Disclosure is provided to comply with 37 C.F.R. § 1.72(b) and is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. In addition, in the foregoing Detailed Description, various features may be grouped together or described in a single embodiment for the purpose of streamlining the disclosure. This disclosure is not to be interpreted as reflecting an intention that the claimed embodiments employ more features than are expressly recited in each claim. Rather, as the following claims reflect, inventive subject matter may be directed to fewer than all of the features of any of the disclosed embodiments.
The above-disclosed subject matter is to be considered illustrative, and not restrictive, and the appended claims are intended to cover all such modifications, enhancements, and other embodiments, which fall within the true spirit and scope of the present disclosure. For example, features described with respect to one embodiment may be incorporated into other embodiments. Thus, to the maximum extent allowed by law, the scope of the present disclosure is to be determined by the broadest permissible interpretation of the following claims and their equivalents, and shall not be restricted or limited by the foregoing detailed description.
Liu, Xiong, Ma, YiChao, Liang, Cho Kok, Myint, Than Zaw
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